Prandtl Number Dependent Natural Convection with Internal Heat Sources

Prandtl Number Dependent Natural Convection with Internal Heat Sources PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Book Description
Natural convection plays an important role in determining the thermal load from debris accumulated in the reactor vessel lower head during a severe accident. Recently, attention is being paid to the feasibility of external vessel flooding as a severe accident management strategy and to the phenomena affecting the success path for retaining the molten core material inside the vessel. The heat transfer inside the molten core material can be characterized by the strong buoyancy-induced flows resulting from internal heating due to decay of fission products. The thermo-fluid dynamic characteristics of such flow depend strongly on the thermal boundary conditions. The spatial and temporal variation of heat flux on the pool wall boundaries and the pool superheat are mainly characterized by the natural convection flow inside the molten pool. In general, the natural convection heat transfer phenomena involving the internal heat generation are represented by the modified Rayleigh number (Ra'), which quantifies the internal heat source and hence the strength of the buoyancy force. In this study, tests were conducted in a rectangular section 250 mm high, 500 mm long and 160 mm wide. Twenty-four T-type thermocouples were installed in the test section to measure temperatures. Four T-type thermocouples were used to measure the boundary temperatures. The thermocouples were placed in designated locations after calibration. A direct heating method was adopted in this test to simulate the uniform heat generation. The experiments covered a range of Ra' between 1.5x106 and 7.42x1015 and the Prandtl number (Pr) between 0.7 and 6.5. Tests were conducted with water and air as simulant. The upper and lower boundary conditions were maintained uniform. The results demonstrated feasibility of the direct heating method to simulate uniform volumetric heat generation. Particular attentions were paid to the effect of Pr on natural convection heat transfer within the rectangular pool.

Prandtl Number Dependent Natural Convection with Internal Heat Sources

Prandtl Number Dependent Natural Convection with Internal Heat Sources PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

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Book Description
Natural convection plays an important role in determining the thermal load from debris accumulated in the reactor vessel lower head during a severe accident. Recently, attention is being paid to the feasibility of external vessel flooding as a severe accident management strategy and to the phenomena affecting the success path for retaining the molten core material inside the vessel. The heat transfer inside the molten core material can be characterized by the strong buoyancy-induced flows resulting from internal heating due to decay of fission products. The thermo-fluid dynamic characteristics of such flow depend strongly on the thermal boundary conditions. The spatial and temporal variation of heat flux on the pool wall boundaries and the pool superheat are mainly characterized by the natural convection flow inside the molten pool. In general, the natural convection heat transfer phenomena involving the internal heat generation are represented by the modified Rayleigh number (Ra'), which quantifies the internal heat source and hence the strength of the buoyancy force. In this study, tests were conducted in a rectangular section 250 mm high, 500 mm long and 160 mm wide. Twenty-four T-type thermocouples were installed in the test section to measure temperatures. Four T-type thermocouples were used to measure the boundary temperatures. The thermocouples were placed in designated locations after calibration. A direct heating method was adopted in this test to simulate the uniform heat generation. The experiments covered a range of Ra' between 1.5x106 and 7.42x1015 and the Prandtl number (Pr) between 0.7 and 6.5. Tests were conducted with water and air as simulant. The upper and lower boundary conditions were maintained uniform. The results demonstrated feasibility of the direct heating method to simulate uniform volumetric heat generation. Particular attentions were paid to the effect of Pr on natural convection heat transfer within the rectangular pool.

Internally Heated Convection and Rayleigh-Bénard Convection

Internally Heated Convection and Rayleigh-Bénard Convection PDF Author: David Goluskin
Publisher: Springer
ISBN: 3319239414
Category : Science
Languages : en
Pages : 73

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Book Description
This Brief describes six basic models of buoyancy-driven convection in a fluid layer: three configurations of internally heated convection and three configurations of Rayleigh-Bénard convection. The author discusses the main quantities that characterize heat transport in each model, along with the constraints on these quantities. This presentation is the first to place the various models in a unified framework, and similarities and differences between the cases are highlighted. Necessary and sufficient conditions for convective motion are given. For the internally heated cases only, parameter-dependent lower bounds on the mean fluid temperature are proven, and results of past simulations and laboratory experiments are summarized and reanalyzed. The author poses several open questions for future study.

An Integral Method for Natural-convection Flows at High and Low Prandtl Numbers

An Integral Method for Natural-convection Flows at High and Low Prandtl Numbers PDF Author: Willis H. Braun
Publisher:
ISBN:
Category : Boundary layer
Languages : en
Pages : 44

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Prandtl Number Dependence of Natural Convection in Porous Medium

Prandtl Number Dependence of Natural Convection in Porous Medium PDF Author: Thorlakur Jonsson
Publisher:
ISBN:
Category : Heat
Languages : en
Pages : 92

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Evaluation of the Prandtl Number Error in the Modified Boundary Layer Type Solution for Free Convection Flow in a Vertical Closed Tube with Arbitrarily Distributed Internal Heat Source and Wall Temperature

Evaluation of the Prandtl Number Error in the Modified Boundary Layer Type Solution for Free Convection Flow in a Vertical Closed Tube with Arbitrarily Distributed Internal Heat Source and Wall Temperature PDF Author: Dale Mohr
Publisher:
ISBN:
Category : Heat
Languages : en
Pages : 88

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Natural Convection from Circular Cylinders

Natural Convection from Circular Cylinders PDF Author: Sandra K. S. Boetcher
Publisher: Springer
ISBN: 3319081322
Category : Science
Languages : en
Pages : 57

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Book Description
This book presents a concise, yet thorough, reference for all heat transfer coefficient correlations and data for all types of cylinders: vertical, horizontal, and inclined. This book covers all natural convection heat transfer laws for vertical and inclined cylinders and is an excellent resource for engineers working in the area of heat transfer engineering.

Fundamentals of Natural Convection

Fundamentals of Natural Convection PDF Author:
Publisher:
ISBN:
Category : Heat
Languages : en
Pages : 160

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Natural Convection

Natural Convection PDF Author: Yogesh Jaluria
Publisher: Pergamon
ISBN:
Category : Science
Languages : en
Pages : 344

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Fundamentals of Natural Convection

Fundamentals of Natural Convection PDF Author: Vedat S. Arpaci
Publisher:
ISBN:
Category : Science
Languages : en
Pages : 132

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Natural Convection

Natural Convection PDF Author: Ivan Catton
Publisher:
ISBN:
Category : Heat
Languages : en
Pages : 160

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